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Optimization Approaches to Multiplicative Tariff of Rates Estimation in Non-Life Insurance

机译:非人寿保险费率估算乘数费率的优化方法

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We focus on rating of non-life insurance contracts. We employ multiplicative models with basic premium levels and specific surcharge coefficients for various levels of selected risk/rating factors. We use generalized linear models (GLM) to describe the probability distribution of total losses for a contract during one year. We show that the traditional frequency-severity approaches based only on GLM with logarithmic link function can lead to estimates which do not fulfill business requirements. For example, a maximal surcharge and monotonicity of coefficient can be desirable. Moreover, our approach can handle total losses, which are based on arbitrary loss distributions, possibly decomposed into several classes, e.g., small and large or property and bodily injury. Various costs and loadings can be also incorporated into the tariff rates. We propose optimization problems for rate estimation which enable hedging against expected losses and taking into account a prescribed loss ratio and other business requirements. Moreover, we introduce stochastic programming problems with reliability type constraints which take into account individual risk of each rate cell or collective risk. In the numerical study, we apply the approaches to Motor Third Party Liability (MTPL) policies.
机译:我们专注于非人寿保险合同的评级。我们采用具有基本保费水平和特定附加费系数的乘法模型,针对各种水平的所选风险/评估因素。我们使用广义线性模型(GLM)来描述一年中合同总损失的概率分布。我们表明,仅基于具有对数链接功能的GLM的传统频率严重性方法会导致无法满足业务需求的估计。例如,最大附加费和系数的单调性可能是期望的。而且,我们的方法可以处理基于任意损失分布的总损失,该损失可能分解为几类,例如大小和财产损失或人身伤害。各种费用和负担也可以纳入关税率。我们提出了费率估算的优化问题,可以对冲预期损失并考虑规定的损失率和其他业务需求。此外,我们介绍了具有可靠性类型约束的随机规划问题,其中考虑了每个费率单元的个体风险或集体风险。在数值研究中,我们将方法应用于汽车第三方责任险(MTPL)政策。

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